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本文引用的文献

1
Studies on the adaptation of intact leaves to changing light intensities by a kinetic analysis of chlorophyll fluorescence and oxygen evolution as measured by the photoacoustic signal.利用光声信号测量叶绿素荧光和氧气演化的动力学分析研究完整叶片对不断变化的光强的适应。
Photosynth Res. 1989 Apr;20(1):59-83. doi: 10.1007/BF00028622.
2
Membrane-inlet mass spectrometry reveals a high driving force for oxygen production by photosystem II.膜进样质谱揭示了光合系统 II 产生氧气的高驱动力。
Proc Natl Acad Sci U S A. 2011 Mar 1;108(9):3602-7. doi: 10.1073/pnas.1014249108. Epub 2011 Feb 14.
3
Functional Models for the Oxygen-Evolving Complex of Photosystem II.光系统II放氧复合体的功能模型
Coord Chem Rev. 2008 Feb 1;252(3-4):444-455. doi: 10.1016/j.ccr.2007.06.002.
4
Principles, efficiency, and blueprint character of solar-energy conversion in photosynthetic water oxidation.光合作用水氧化中太阳能转化的原理、效率和蓝图特征。
Acc Chem Res. 2009 Dec 21;42(12):1861-70. doi: 10.1021/ar900225y.
5
Solar fuels via artificial photosynthesis.通过人工光合作用生产太阳能燃料。
Acc Chem Res. 2009 Dec 21;42(12):1890-8. doi: 10.1021/ar900209b.
6
Structures and energetics for O2 formation in photosystem II.在光系统 II 中形成 O2 的结构和能量学。
Acc Chem Res. 2009 Dec 21;42(12):1871-80. doi: 10.1021/ar900117k.
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Biomimetic and microbial approaches to solar fuel generation.仿生和微生物方法在太阳能燃料生成中的应用。
Acc Chem Res. 2009 Dec 21;42(12):1899-909. doi: 10.1021/ar900127h.
8
A combined picture from theory and experiments on water oxidation, oxygen reduction and proton pumping.一张结合了水氧化、氧还原和质子泵浦的理论与实验的图片。
Dalton Trans. 2009 Aug 14(30):5832-40. doi: 10.1039/b903007g. Epub 2009 May 5.
9
Photosynthetic oxygen evolution is not reversed at high oxygen pressures: mechanistic consequences for the water-oxidizing complex.在高氧压力下光合放氧不会逆转:对水氧化复合物的机制影响
Biochemistry. 2009 Feb 17;48(6):1381-9. doi: 10.1021/bi801774f.
10
Photosynthetic water oxidation at elevated dioxygen partial pressure monitored by time-resolved X-ray absorption measurements.通过时间分辨X射线吸收测量监测在升高的氧气分压下的光合水氧化。
Proc Natl Acad Sci U S A. 2008 Nov 11;105(45):17384-9. doi: 10.1073/pnas.0802596105. Epub 2008 Nov 5.

高质子浓度下光合作用水氧化的热力学限制。

Thermodynamic limitations of photosynthetic water oxidation at high proton concentrations.

机构信息

Fachbereich Physik, Freie Universität Berlin, Arnimallee 14, 14195 Berlin, Germany.

出版信息

J Biol Chem. 2011 May 20;286(20):18222-8. doi: 10.1074/jbc.M111.237941. Epub 2011 Apr 4.

DOI:10.1074/jbc.M111.237941
PMID:21464129
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3093894/
Abstract

In oxygenic photosynthesis, solar energy drives the oxidation of water catalyzed by a Mn(4)Ca complex bound to the proteins of Photosystem II. Four protons are released during one turnover of the water oxidation cycle (S-state cycle), implying thermodynamic limitations at low pH. For proton concentrations ranging from 1 nm (pH 9) to 1 mm (pH 3), we have characterized the low-pH limitations using a new experimental approach: a specific pH-jump protocol combined with time-resolved measurement of the delayed chlorophyll fluorescence after nanosecond flash excitation. Effective pK values were determined for low-pH inhibition of the light-induced S-state transitions: pK(1)=3.3 ± 0.3, pK(2)=3.5 ± 0.2, and pK(3)≈pK(4)=4.6 ± 0.2. Alkaline inhibition was not observed. An extension of the classical Kok model facilitated assignment of these four pK values to specific deprotonation steps in the reaction cycle. Our results provide important support to the extended S-state cycle model and criteria needed for assessment of quantum chemical calculations of the mechanism of water oxidation. They also imply that, in intact organisms, the pH in the lumen compartment can hardly drop below 5, thereby limiting the ΔpH contribution to the driving force of ATP synthesis.

摘要

在含氧光合作用中,太阳能驱动结合在光系统 II 蛋白上的 Mn(4)Ca 配合物催化水的氧化。在一个水氧化循环(S 态循环)的翻转过程中会释放出四个质子,这意味着在低 pH 值下存在热力学限制。对于质子浓度范围从 1nm(pH 9)到 1mm(pH 3),我们使用新的实验方法来表征低 pH 值限制:特定的 pH 跃变方案与纳秒闪光激发后延迟叶绿素荧光的时间分辨测量相结合。确定了低 pH 值对光诱导 S 态跃迁的抑制的有效 pK 值:pK(1)=3.3 ± 0.3、pK(2)=3.5 ± 0.2 和 pK(3)≈pK(4)=4.6 ± 0.2。未观察到碱性抑制。经典 Kok 模型的扩展有助于将这四个 pK 值分配给反应循环中特定的去质子化步骤。我们的结果为扩展的 S 态循环模型提供了重要支持,并为评估水氧化机制的量子化学计算所需的标准提供了支持。它们还意味着,在完整的生物体中,腔室隔间中的 pH 值几乎不可能降至 5 以下,从而限制了 ΔpH 值对 ATP 合成驱动力的贡献。